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Influences of Hall current and radiation on MHD micropolar non-Newtonian hybrid nanofluid flow between two surfaces

机译:霍尔电流和辐射对两个表面MHD微柱非牛顿杂交纳米流体流动的影响

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In this article, the magnetohydrodynamic flow and heat transmission of a micropolar hybrid nanofluid between two surfaces inside a rotating system are examined. The Hall current and thermal radiations are also considered for the flow system. In this article, a base fluid is taken as water, while graphene oxide ( GO ) and copper ( Cu ) are applied as hybrid nanoparticles. The flow is assumed to be in a steady state. The governing partial differential equations along with boundary conditions for the modeled problem are transformed into a system of non-linear ordinary differential equations using similarity transformations. The set of resultant ordinary differential equations is solved by using an optimal approach. The main focus of this study is to examine the magnetohydrodynamic heat transmission and hybrid nanofluid flow in a rotating system between two parallel plates by taking into account the thermal radiations and Hall current impacts. Various physical parameters are discussed in detail graphically in this article. The main outcome of this study indicates that the augmented values of the magnetic parameter increase the velocity profile and decrease the rotational velocity profile.
机译:在本文中,检查了在旋转系统内的两个表面之间的磁力流体流动和热传递。流动系统也考虑了霍尔电流和热辐射。在本文中,将基础流体作为水,而氧化石墨烯(GO)和铜(Cu)作为杂化纳米颗粒。假设流量处于稳定状态。控制局部微分方程以及模型问题的边界条件的使用相似性转换转换为非线性常微分方程系统。通过使用最佳方法解决了所得常微分方程的集合。本研究的主要焦点是通过考虑热辐射和霍尔电流冲击来检查两个平行板之间的旋转系统中的磁性动力学热传递和杂交纳米流体流动。在本文中详细讨论了各种物理参数。本研究的主要结果表明,磁性参数的增强值增加了速度曲线并降低了旋转速度分布。

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